关键氨基酸残基决定了毛霉菌转运体 Xltr1p 对葡萄糖、甘露糖和半乳糖的底物选择性

Wei Ma , Shiyu Yuan , Zixian Wang , Kangle Niu , Fengyi Li , Lulu Liu , Lijuan Han , Xu Fang
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引用次数: 0

摘要

这项研究发现了四个氨基酸残基(Leu174、Asn297、Tyr301 和 Gln291)有助于灵芝毛霉的高亲和性葡萄糖转运体 Xltr1p 识别底物。通过同源建模、进化保护分析和 Xltr1p 的底物对接建模,筛选出了影响底物特异性的潜在热点。随后通过硅学筛选获得了携带这些热点突变的变体。用丙氨酸替换 Xltr1p 中的 Leu174 或 Asn297 会导致己糖转运活性的丧失,这表明 Leu174 和 Asn297 在己糖转运中起着至关重要的作用。Y301W 变体表现出甘露糖转运加速,但失去了半乳糖转运能力,而将 Gln291 突变为丙氨酸则大大加速了甘露糖转运。这些结果表明,位于跨膜α-螺旋 7 的氨基酸(Asn297、Tyr301 和 Gln291)在己糖转运体 Xltr1p 的底物识别中起着关键作用。我们的研究结果将有助于拓展该转运体的潜在应用领域,并为深入了解其功能和特异性的内在机制提供帮助。
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Key amino acid residues govern the substrate selectivity of the transporter Xltr1p from Trichoderma reesei for glucose, mannose, and galactose

This research identified four amino acid residues (Leu174, Asn297, Tyr301, and Gln291) that contribute to substrate recognition by the high-affinity glucose transporter Xltr1p from Trichoderma reesei. Potential hotspots affecting substrate specificity were selected through homology modeling, evolutionary conservation analyses, and substrate-docking modeling of Xltr1p. Variants carrying mutations at these hotspots were subsequently obtained via in silico screening. Replacement of Leu174 or Asn297 in Xltr1p with alanine resulted in loss of hexose transport activity, indicating that Leu174 and Asn297 play essential roles in hexose transport. The Y301W variant exhibited accelerated mannose transport, but lost galactose transport capacity, and mutation of Gln291 to alanine greatly accelerated mannose transport. These results suggest that amino acids located in transmembrane α-helix 7 (Asn297, Tyr301, and Gln291) play critical roles in substrate recognition by the hexose transporter Xltr1p. Our results will help expand the potential applications of this transporter and provide insights into the mechanisms underlying its function and specificity.

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